Tyco 1540 manual Analogue Output Scaling Example, Reading A1r or A2r, Reading Top A1rt or A2rt

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3.15.2 Analogue Output Scaling Example

In this example, the Integra has an output current range of 0 to 10mA and it is required that this output range represents a reading range of 95 to 135V.

Example

Output top 10mA

Analogue Output current from unit

135V Reading top

Reading Value represented by Output

Output bottom 0mA

95V Reading bottom

3.15.2.1 Reading (A1r or A2r)

The measured electrical parameter that the analogue output will represent. Example: Volts Ave (Average Voltage)

As shown in Table 2, any continuously variable parameter (volts, amps, watts etc) can be selected for output as an analogue value. The table also shows those values that may be signed (where the value may go negative).

3.15.2.2 Reading Top (A1rt or A2rt)

This is the value of the electrical parameter that will cause the analogue output to produce ‘Output Top’.

Example: 135 volts.

3.15.2.3 Reading Bottom (A1rb or A2rb)

This is the value of the electrical parameter that will cause the analogue output to produce ‘Output Bottom’.

Example: 95 volts.

This value may be set to any value between zero and 120% of nominal. (Or between –120% and +120% of values that may be signed for example VAr)

3.15.2.4 Output

The two Output values specify the analogue current outputs that will represent the top and bottom Reading values. They are included to allow additional versatility where particular requirements prevail or to convert a 0-20mA output to 4-20mA. However it is suggested that, in most other cases, these values should be set to the limits that the hardware can cover. The range of the analogue output(s) for the unit is marked on the product label.

3.15.2.5 Output Top (A1ot or A2ot)

This is the value of output that will be reached when the measured electrical parameter is at the reading top value.

Example: 10mA.

Integra 1540, 1000, 0640, 0440, 0340, 0240 Issue 1 04/03

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Contents Energy Division Crompton Switchboard Integra Contents Setting up Specification Basis of measurement and calculations Serial Communications Maintenance Appendix a CE Declaration of ConformityTHD Introduction3 0440 Unit CharacteristicsIntegra 1540, 1000, 0640, 0440, 0340, 0240 Issue 1 04/03 Default display Secondary Voltage Maximum PowerDemand Calculation Pulse Output Option RS485 Serial OptionAnalogue Output Option Layout Display ScreensStart Up Screens System Screen Line to Neutral Voltages System %THD ScreenLine to Neutral Voltage %THD Line to Line Voltages %THD Line to Line VoltagesLine Currents Power Neutral Current, Frequency and Power FactorLine Currents %THD Reactive Energy kVArh Active Energy kWhMaximum Demand DemandOver Range Error Messages Setting upKWh and kVArh Display Range Number Entry Procedure Integra 1540, 1000, 0640, 0440, 0340, 0240 Issue 1 04/03 Access with No Password Protection AccessAccess with Password Protection Integra 1540, 1000, 0640, 0440, 0340, 0240 Issue 1 04/03 Changing the Password Potential Transformer Primary Voltage Full Scale CurrentIntegra 1540, 1000, 0640, 0440, 0340, 0240 Issue 1 04/03 Potential Transformer Secondary Value Demand Integration Time Resets Pulsed Output, Pulse Duration Pulse Rate 12 RS485 Baud Rate 13 RS485 Parity Selection 14 RS485 Modbus Address Second Channel Analogue Output Set UpReverse Operation Reduced output rangeReading A1r or A2r Analogue Output Scaling ExampleReading Top A1rt or A2rt Reading Bottom A1rb or A2rbOutput Bottom A1ob or A2ob Power FactorSummary USA Reading European Convention North American Convention Output Phase Angle L1-L2 Calculated Reading Parameter Selection A1r or A2r Parameter Number WireReading Top A1rt or A2rt Reading Bottom A1rb or A2rb Display Only Versions SpecificationDisplay/Transducer Combined 0240, 0340, 0440 121 240V L-L 70.1 139V L-N Accuracy Measuring RangesReference conditions of influence quantities Display/Tranducer Combined 1000 Auxiliary Power Supply Reference conditions Functional ranges Nominal range of use of influence quantities for measurandsScreen StandardsModbus RS485 Serial Communications OptionIntegra 1540 Only Active Energy Pulsed Output OptionEnergy resolution Reactive and Apparent PowerBasis of measurement and calculations Total Harmonic Distortion 1540 only RS485 Port Modbus or JC N2 Serial CommunicationsModbus Implementation Input Registers Parameter Modbus Start High Low Byte Modbus Holding Registers and Integra set upApplication details RS485 Implementation of Johnson Controls MetasysMetasys release requirements Support for Crompton Integra operation Support for Metasys IntegrationDesign considerations Integra 1560/1580 Point Mapping table Metasys N2 applicationMaintenance Integra 1540, 1000, 0640, 0440, 0340, 0240 Issue 1 04/03 Integra 1540, 1000, 0640, 0440, 0340, 0240 Issue 1 04/03 Integra 1540, 1000, 0640, 0440, 0340, 0240 Issue 1 04/03

1540 specifications

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